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I'm working with an emulator, and one of the binary executables I've run across has the following sequence in the beginning of a procedure

40 55

The 40 is a REX prefix, but none of the REX bits are actually set. Section 2.2.1.7 of the Intel software developer's manual states that instructions that implicitly reference the stack pointer will have 64-bit widths. Since 55 is the push ?bp instructions, it seems that a simple 55 would suffice to generate a push rbp. So why is the 40 prefix there?

  • Code generated by a broken assembler? :) – Jester Jun 7 '15 at 21:58
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    Broken compiler, most likely. It consistently does this in all places i expected to see 55 for push rbp. – John Källén Jun 7 '15 at 22:07
  • After reading Wikipedia on x86-64 and Intel's x86 Reference, I would guess this to decode to push bpl – which I would have posted as an answer (see the Wiki page for the rationale), except that it would be an extremely odd thing to do, and so most likely my interpretation is wrong. – usr2564301 Jun 7 '15 at 22:15
  • .. in fact, Intel's Reference does not list r8 in the table of allowed operands for push (2B, pg 4-271). So it must be considered a no-op per 2.2.1: : "... If a REX prefix is used when it has no meaning, it is ignored." – usr2564301 Jun 7 '15 at 22:24
  • @Jongware: What are you talking about? r8 can absolutely be pushed, it's a r64 to the instruction. But objdump agrees that 40 55 is rex push %rbp, where the rex-prefix is useless. 41 55 is push %r8, by the way. – EOF Jun 7 '15 at 22:53
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As Jongware states in his comment the 40 REX prefix is ignored. The reason why you're seeing this however isn't because of a broken compiler, but because the compiler is following the Windows x64 ABI. Functions are required to begin with an instruction that's at least two-bytes long to allow for hotpatching. You might also see other push instructions with a meaningless REX prefix.

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